POJ--1050--To the Max（线性动规，最大子矩阵和）

To the Max Time Limit: 1000MS Memory Limit: 10000K Total Submissions: 44723 Accepted: 23679 Description

Given a two-dimensional array of positive and negative integers, a sub-rectangle is any contiguous sub-array of size 1*1 or greater located within the whole array. The sum of a rectangle is the sum of all the elements in that rectangle. In this problem the sub-rectangle with the largest sum is referred to as the maximal sub-rectangle. As an example, the maximal sub-rectangle of the array:

0 -2 -7 0 9 2 -6 2 -4 1 -4 1 -1 8 0 -2 is in the lower left corner:

9 2 -4 1 -1 8 and has a sum of 15. Input

The input consists of an N * N array of integers. The input begins with a single positive integer N on a line by itself, indicating the size of the square two-dimensional array. This is followed by N^2 integers separated by whitespace (spaces and newlines). These are the N^2 integers of the array, presented in row-major order. That is, all numbers in the first row, left to right, then all numbers in the second row, left to right, etc. N may be as large as 100. The numbers in the array will be in the range [-127,127]. Output

Output the sum of the maximal sub-rectangle. Sample Input

4 0 -2 -7 0 9 2 -6 2 -4 1 -4 1 -1

8 0 -2 Sample Output

15

这道题目是hdu1003 的升级版，HDU 1003，是一维数组最长子段和的问题，这个题目扩展到二维，思路就是把二维转换成一维， 先求第一行最大子段和，再求第一行跟第二行合起来的最大子段和，再求第一行到第三行合起来的最大值，实际上就是把二维数组转换成一维的了，

#include <iostream>
#include <math.h>
#include <string.h>
#include <algorithm>
#include <stdlib.h>

using namespace std;
int a[105][105];
int n;
int dp[105];
int b[105];
int sum;
int main()
{
   while(scanf("%d",&n)!=EOF)
   {
       sum=0;
       for(int i=1;i<=n;i++)
       {
           for(int j=1;j<=n;j++)
           {
               scanf("%d",&a[i][j]);
           }
       }
       for(int i=1;i<=n;i++)
       {
           memset(b,0,sizeof(b));
           memset(dp,0,sizeof(dp));
           for(int k=i;k<=n;k++)
           {
               for(int j=1;j<=n;j++)
               {
                   b[j]+=a[k][j];
                   if(dp[j-1]>=0)
                       dp[j]=dp[j-1]+b[j];
                   else
                       dp[j]=b[j];
                   if(sum<dp[j])
                       sum=dp[j];
               }
           }

       }
       printf("%d\n",sum);

   }
    return 0;
}